IB Physics HL Tool 1 — Experimental Techniques Practical Skills work safely & responsibly ~14 min read

Safety, Ethics & the Environment

Every experiment you do in physics comes with a responsibility — to yourself, to others, and to the world around you. Before you switch on a laser or heat a flask of water, you need to think about three things: is it safe, is it ethical, and what’s its environmental impact? Examiners love to test this, and it’s genuinely useful in the lab. Here’s how to identify the risks and show you can manage them properly.

📚 What you need to know

Safety: identify, assess, minimise

Whenever you carry out an investigation, you must identify the safety hazards and risks, and manage them. A good risk assessment always follows the same three moves:

Every risk assessment: identify → assess → minimise 1. Identify what could cause harm? 2. Assess how likely & how severe? 3. Minimise change the procedure
A risk assessment isn’t a list of dangers — it’s these three actions: spot the hazard, judge the risk, then change what you do to reduce it.
Here’s the distinction examiners want you to nail: a hazard is the thing that could hurt you (a hot beaker, a laser beam), while the risk is how likely it is to actually cause harm and how bad it would be. A sharp knife locked in a drawer is a hazard with low risk. Get that difference clear and you’ll pick up the easy marks.

Hazards of common apparatus

Different equipment brings different dangers. Here are the ones you’re most likely to be asked about, and how to handle each safely.

ApparatusMain hazardHow to minimise the risk
Radioactive sourcesIonising radiationStore in lead-lined, labelled boxes; handle with tongs; never point at anyone; use for the shortest time; keep students at a distance
LasersEye damageNever aim at people or reflective surfaces; keep the beam horizontal and below eye level; wear laser goggles; switch off when done
Electron diffractionHigh voltageOnly qualified staff set it up; ensure it’s earthed; never touch live connections
Hot water / gas experimentsBurns, scaldsKeep apparatus away from table edges; never leave unattended; don’t sit beside beakers of hot water
Pressurised glass (Boyle’s law)Explosion, breakageShield glass tubes with clear screens; don’t overfill gas syringes; handle carefully
Electrical circuitsShockUse low voltages (1.5–9 V); check mains equipment is earthed; avoid bare wires and water nearby

And the general rules that apply almost everywhere: wear goggles and gloves when handling hot equipment, glass or chemicals, and handle glassware carefully to avoid breakage.

Ethical issues

Physics rarely raises the big ethical concerns you’d meet in biology or psychology — but you should still think it through. Ask whether your equipment or methods could pose an ethical dilemma:

If you genuinely can’t identify any ethical concern, it’s fine to say so — but you must justify why there isn’t one, rather than just ignoring the question.

Environmental issues

Most physics experiments have a low environmental impact, but “low” isn’t “none”. The three big ones to consider are electricity, water, and batteries.

Three environmental considerations ⚡ Electricity mains often burnsfossil fuels switch off unused kit;use low voltages 💧 Water don’t pour contaminatedwater down drains reuse water acrosstrials; dispose properly 🔋 Batteries disposal risks fire &toxic chemicals recycle; use rechargeableor mains where possible
The three most common environmental concerns in a physics lab — each with the “good practice” that reduces its impact.

Beyond these, the golden rule is waste reduction: wherever possible, reuse or recycle materials rather than discarding them, and follow proper disposal methods. And crucially — if you identify an environmental concern in an investigation, you must explain how you intend to reduce it. Spotting the problem isn’t enough; you need the solution too.

Identify a
concern
safety /
ethics / env.
Explain the
impact
state your
plan
Reduce or
manage it
WE 1

A student plans an experiment using a laser to investigate diffraction. Identify one hazard, assess the risk, and suggest how to minimise it.

Step 1 — identify the hazard The laser beam could cause eye damage. Step 2 — assess the risk Serious harm (permanent eye injury), likely if the beam reaches an eye directly or by reflection. Step 3 — minimise Keep the beam horizontal and below eye level, never aim at people or shiny surfaces, wear laser goggles, and switch off when finished. Hazard: eye damage → minimise with beam control + goggles Always give all three parts: the hazard (the thing), the risk (how bad/likely), and a specific control measure. A vague “be careful” scores nothing.
WE 2

An experiment repeatedly uses fresh water in a ripple tank and runs mains-powered lamps for several hours. Identify two environmental concerns and state how to reduce each.

Concern 1 — water use Using fresh water each time is wasteful. Reuse the same water across trials and dispose of it properly. Concern 2 — electricity use Mains power often comes from fossil fuels. Switch lamps off when not in use and choose energy-efficient equipment. Reuse water; switch off / use efficient lamps For every environmental concern you name, you must pair it with a way to reduce it. Identifying alone won’t earn full marks — the reduction plan is the point.

⚛ Answering a “safety/ethics/environment” question

  1. Hazard: name the specific thing that could cause harm.
  2. Risk: say how likely and how severe the harm is.
  3. Minimise: give a concrete control measure.
  4. Ethics: consider consent / animal welfare, or justify why there’s none.
  5. Environment: name the concern and your plan to reduce it.

💡 Top tips

⚠ Common mistakes

Quick recap: A risk assessment means identify the hazard, assess the risk, and minimise it with a specific control. Know the hazards of radioactive sources, lasers, high voltages, hot water and pressurised glass. For ethics, consider consent and animal welfare (or justify none). For the environment, address electricity, water and batteries — and always pair a concern with a plan to reduce it.
Working safely is the first practical skill — the second is measuring accurately. An experiment is only as good as its data, and that means picking the right instrument and reading it correctly. Next page: Measuring Variables.

Practical safety questions catching you out?

Book a free meeting and we’ll drill the hazard-vs-risk distinction, apparatus-specific controls, and the ethics and environment points examiners reward.

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